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Graphene sensing meshes for densely distributed strain field monitoring

机译:石墨烯传感网格密集分布式应变场监测

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摘要

The objective of this study is to design and validate distributed strain field monitoring using a patterned nanocomposite "sensing mesh" that is coupled with an electrical impedance tomography (EIT) measurement strategy and algorithm. Although EIT has been used in other studies and in conjunction with a piezoresistive thin film for spatial damage detection, different strain components cannot be directly extracted from reconstructed EIT conductivity maps. Therefore, this study seeks to address this issue by patterning piezoresistive graphene-based thin films to form a mesh-like pattern. The high aspect ratio of each nanocomposite grid interconnect acts as a linear distributed strain sensor, capable of resolving strains along the entire length and direction of the element. This study first began with the design, fabrication, and characterization of the strain sensing response of a graphene-based thin film of high strain sensitivity. Second, the strain-sensitive film was spray-coated onto patterned polymer substrates to form the sensing meshes, which were then subjected to load tests. Upon validating distributed strain field monitoring through EIT, its applicability for field implementation and damage characterization was also demonstrated by instrumenting sensing meshes in the column of a seven-story reinforced-concrete building subjected to shaking table earthquake excitations. The large-scale shaking table test results successfully validated distributed damage detection.
机译:本研究的目的是使用与电阻抗断层扫描(EIT)测量策略和算法耦合的图案化的纳米复合材料“感测网”来设计和验证分布式应变场监测。尽管在其他研究中使用了EIT并且与用于空间损伤检测的压阻薄膜结合使用,但是不能直接从重建的EIT电导率图中提取不同的应变分量。因此,本研究旨在通过图案化压阻石墨烯基薄膜来解决该问题,以形成类似的网状图案。每个纳米复合材料网格互连的高纵横比用作线性分布式应变传感器,能够沿着元件的整个长度和方向分辨菌株。本研究首先开始于高应变敏感性的石墨烯基薄膜的应变感测响应的设计,制造和表征。其次,将应变敏感膜喷涂到图案化的聚合物基材上,以形成感测网状物,然后进行负载试验。在通过EIT验证分布式应变场监测时,还通过在经过摇动桌地震激励的七层钢筋混凝土建筑柱中仪器仪表啮合来证明其对现场实施和损坏表征的适用性。大型摇动台测试结果成功验证了分布式损坏检测。

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